30

I have a nested python dictionary data structure. I want to read its keys and values without using collection module. The data structure is like bellow.

d = {'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'baz': 3, 'quux': 4}}

I was trying to read the keys in the dictionary using the bellow way but getting error.

Code

for key, value in d:
    print(Key)

Error

ValueError: too many values to unpack (expected 2)

So can anyone please explain the reason behind the error and how to iterate through the dictionary.

8
  • 2
    Do you want to read the nested keys and values as well ?
    – ZdaR
    May 3, 2017 at 6:50
  • 1
    just write d.items(), it will work, by default on iterating the name of dict returns only the keys. Hope it help. :) May 3, 2017 at 6:55
  • yes. I want to read all the keys and values that include the nested keys an values May 3, 2017 at 6:55
  • 1
    @Arijit Posted an answer for the requested output, have a look. May 3, 2017 at 7:10
  • 1
    General answer of this question isn't answered here but is answered elsewhere: stackoverflow.com/questions/10756427/…
    – TimZaman
    Aug 1, 2018 at 23:46

9 Answers 9

36

The following will work with multiple levels of nested-dictionary:

def get_all_keys(d):
    for key, value in d.items():
        yield key
        if isinstance(value, dict):
            yield from get_all_keys(value)


d = {'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'dict3': {'baz': 3, 'quux': 4}}}
for x in get_all_keys(d):
    print(x)

This will give you:

dict1
foo
bar
dict2
dict3
baz
quux
1
  • 2
    Recursion can really save you a lot of time from manually specifying logic for each level of your nested dictionary
    – SuperCode
    Apr 7, 2022 at 9:27
24

keys() method returns a view object that displays a list of all the keys in the dictionary

Iterate nested dictionary:

d = {'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'baz': 3, 'quux': 4}}

for i in d.keys():
    print i
    for j in d[i].keys():
        print j

OR

for i in d:
    print i
    for j in d[i]:
        print j

output:

dict1 
foo
bar

dict2
baz 
quux

where i iterate main dictionary key and j iterate the nested dictionary key.

9

As the requested output, the code goes like this

    d = {'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'baz': 3, 'quux': 4}}

    for k1,v1 in d.iteritems(): # the basic way
        temp = ""   
        temp+=k1
        for k2,v2 in v1.iteritems():
           temp = temp+" "+str(k2)+" "+str(v2)
        print temp

In place of iteritems() you can use items() as well, but iteritems() is much more efficient and returns an iterator.

Hope this helps :)

1
  • 22
    The iteritems method does not exist for Python 3.
    – equaeghe
    Feb 13, 2019 at 12:01
6

you can iterate all keys and values of nested dictionary as following:

d = {'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'baz': 3, 'quux': 4}}

for i in d:
    for j, k in d[i].items():
        print(j,"->", k)

Your output looks like this -

foo -> 1
bar -> 2
baz -> 3
quux -> 4
4

To get keys and values you need dict.items():

for key, value in d.items():
    print(key)

If you want just the keys:

for key in d:
    print(key)
2
  • 3
    For python2 you could prefer dict.iteritems() instead, it is faster for this use case.
    – jadsq
    May 3, 2017 at 6:52
  • 8
    This is not an answer to "how to traverse a nested dict".
    – TimZaman
    Aug 1, 2018 at 23:45
3

Iterating through a dictionary only gives you the keys.

You told python to expect a bunch of tuples, and it tried to unpack something that wasn't a tuple (your code is set up to expect each iterated item to be of the form (key,value), which was not the case (you were simply getting key on each iteration).

You also tried to print Key, which is not the same as key, which would have led to a NameError.

for key in d:
    print(key)

should work.

2

if given dictionary pattern has monotone format and keys are known

dict_ = {'0': {'foo': 1, 'bar': 2}, '1': {'foo': 3, 'bar': 4}}
for key, val in dict_.items():
    if isinstance(val, dict):
        print(val.get('foo'))
        print(val.get('bar'))

in this case we can skip nested loop

2

You could use benedict (a dict subclass) and the traverse utility method:

Installation: pip install python-benedict

from benedict import benedict

d = benedict({'dict1': {'foo': 1, 'bar': 2}, 'dict2': {'baz': 3, 'quux': 4}})

def traverse_item(dct, key, value):
   print('key: {} - value: {}'.format(key, value))

d.traverse(traverse_item)

Documentation: https://github.com/fabiocaccamo/python-benedict

Note: I am the author of this project.

1
  • 1
    Checked it out and seems it's perfect for NoSql data parsing. Perfect Package!!
    – SuperCode
    Apr 7, 2022 at 9:46
1
def print_all(df):
 #iterates through a nested dict and prints all values
 for key in df.keys():
         if type(df[key]) == dict:
                 print_all(df[key])
                 
         else:
               print(key,':',df[key])


example
ds = {'dict1': {'foo': 1, 'bar': 2,'dict2': {'dict3': {'baz': 3, 'quux': 4}}}, 'dict2': {'dict3': {'baz': 3, 'quux': 4}}}

print_all(ds)

output

foo : 1
bar : 2
baz : 3
quux : 4
baz : 3
quux : 4
1
  • 1
    Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center. Sep 5, 2023 at 12:00

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